Studies an analytic model of a spherically symmetric compact object in Einsteinian gravity

Abstract We propose a new compact stellar object model existing in a space filled with a distribution of anisotropic fluid matter for stellar configuration exposed to the hydrostatic equilibrium. An analytical solution was obtained using dark-energy (DE), which is characterized by a equation of stat...

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Main Authors: Abdelghani Errehymy, Mohammed Daoud
Format: Article
Language:English
Published: SpringerOpen 2020-03-01
Series:European Physical Journal C: Particles and Fields
Online Access:http://link.springer.com/article/10.1140/epjc/s10052-020-7825-x
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spelling doaj-2415557f4edc42abab40509be8bfdec02020-11-25T02:50:26ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60441434-60522020-03-0180311210.1140/epjc/s10052-020-7825-xStudies an analytic model of a spherically symmetric compact object in Einsteinian gravityAbdelghani Errehymy0Mohammed Daoud1Laboratory of High Energy Physics and Condensed Matter (LPHEMaC), Department of Physics, Faculty of Sciences Aïn Chock, University of Hassan IIDepartment of Physics, Faculty of Sciences, University of Ibn TofailAbstract We propose a new compact stellar object model existing in a space filled with a distribution of anisotropic fluid matter for stellar configuration exposed to the hydrostatic equilibrium. An analytical solution was obtained using dark-energy (DE), which is characterized by a equation of state (EoS) of the type $$p=\gamma \rho - \rho $$ p=γρ-ρ corresponding to the external Schwarzschild vacuum solution through a thin envelope. We have imposed a collective function based on an adjustable coefficient to solve the Einstein field equations (EFEs). We investigate the general physical characteristics of high-density astrophysical objects based on the required solutions, with the inside structure of the stellar objects, such as the energy conditions, stability analysis, mass function, surface redshift function, velocity of sound and compactness of stellar objects through theoretical expression as well as graphic plots. In terms of our results, the physical behavior of this model can be used to model ultra-compact objects.http://link.springer.com/article/10.1140/epjc/s10052-020-7825-x
collection DOAJ
language English
format Article
sources DOAJ
author Abdelghani Errehymy
Mohammed Daoud
spellingShingle Abdelghani Errehymy
Mohammed Daoud
Studies an analytic model of a spherically symmetric compact object in Einsteinian gravity
European Physical Journal C: Particles and Fields
author_facet Abdelghani Errehymy
Mohammed Daoud
author_sort Abdelghani Errehymy
title Studies an analytic model of a spherically symmetric compact object in Einsteinian gravity
title_short Studies an analytic model of a spherically symmetric compact object in Einsteinian gravity
title_full Studies an analytic model of a spherically symmetric compact object in Einsteinian gravity
title_fullStr Studies an analytic model of a spherically symmetric compact object in Einsteinian gravity
title_full_unstemmed Studies an analytic model of a spherically symmetric compact object in Einsteinian gravity
title_sort studies an analytic model of a spherically symmetric compact object in einsteinian gravity
publisher SpringerOpen
series European Physical Journal C: Particles and Fields
issn 1434-6044
1434-6052
publishDate 2020-03-01
description Abstract We propose a new compact stellar object model existing in a space filled with a distribution of anisotropic fluid matter for stellar configuration exposed to the hydrostatic equilibrium. An analytical solution was obtained using dark-energy (DE), which is characterized by a equation of state (EoS) of the type $$p=\gamma \rho - \rho $$ p=γρ-ρ corresponding to the external Schwarzschild vacuum solution through a thin envelope. We have imposed a collective function based on an adjustable coefficient to solve the Einstein field equations (EFEs). We investigate the general physical characteristics of high-density astrophysical objects based on the required solutions, with the inside structure of the stellar objects, such as the energy conditions, stability analysis, mass function, surface redshift function, velocity of sound and compactness of stellar objects through theoretical expression as well as graphic plots. In terms of our results, the physical behavior of this model can be used to model ultra-compact objects.
url http://link.springer.com/article/10.1140/epjc/s10052-020-7825-x
work_keys_str_mv AT abdelghanierrehymy studiesananalyticmodelofasphericallysymmetriccompactobjectineinsteiniangravity
AT mohammeddaoud studiesananalyticmodelofasphericallysymmetriccompactobjectineinsteiniangravity
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